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Why the Phosphotransferase System of Escherichia coli Escapes Diffusion Limitation

机译:为什么大肠杆菌的磷酸转移酶系统逃逸了扩散限制

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摘要

We calculated the implications of diffusion for the phosphoenolpyruvate:glucose phosphotransferase system (glucose-PTS) of Escherichia coli in silicon cells of various magnitudes. For a cell of bacterial size, diffusion limitation of glucose influx was negligible. Nevertheless, a significant concentration gradient for one of the enzyme species, nonphosphorylated IIAGlc, was found. This should have consequences because the phosphorylation state of IIAGlc is an important intracellular signal. For mammalian cell sizes we found significant diffusion limitation, as well as strong concentration gradients in many PTS components, and strong effects on glucose and energy signaling. We calculated that the PTS may sense both extracellular glucose and the intracellular free-energy state. We discuss i), that the effects of diffusion on cell function should prevent this highly effective bacterial system from functioning in eukaryotic cells, ii), that in the larger eukaryotic cell any similar chain of mobile group-transfer proteins can neither sustain the same volumetric flux as in bacteria nor transmit a signal far into the cell, and iii), that systems such as these may exhibit spatial differentiation in their sensitivity to different signals.
机译:我们计算了在不同大小的硅细胞中大肠杆菌的磷酸烯醇丙酮酸:葡萄糖磷酸转移酶系统(葡萄糖-PTS)扩散的影响。对于细菌大小的细胞,葡萄糖流入的扩散限制可以忽略不计。尽管如此,对于一种酶种类,未磷酸化的IIA Glc ,仍存在明显的浓度梯度。这应该产生后果,因为IIA Glc 的磷酸化状态是重要的细胞内信号。对于哺乳动物细胞大小,我们发现了显着的扩散限制,以及许多PTS组分中的浓度梯度很大,并且对葡萄糖和能量信号传导产生了强烈影响。我们计算得出,PTS可能同时感知细胞外葡萄糖和细胞内自由能状态。我们讨论i)扩散对细胞功能的影响应阻止这种高效细菌系统在真核细胞中发挥作用,ii)在较大的真核细胞中,任何类似的流动基团转移蛋白链均无法维持相同的体积像细菌中那样的流量也不会将信号传递到细胞深处,并且iii)这样的系统在对不同信号的敏感性方面可能表现出空间差异。

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